A lock device includes a cam portion including a stationary-side cam; a rotor including a movable-side cam; a slide groove; a slide projection; an engagement projection; and a lock groove, in which the movable-side cam is disengaged from the stationary-side cam, so that the rotor rotates so as to allow the engagement projection that has been fitted in the lock portion to disengage from the lock portion. The urging device includes a spring, and a sleeve inserted to pass through a lower-side rod portion, positioned between the rotor and the spring, and also restricting a movement of the rod in a sliding direction in a lock position of the lock device (for example, a lock groove and an engagement projection, and the like).
|
1. A push-up device for pushing out a fuel lid openably and closably attached to a vehicle body, in an opening direction, comprising:
a cylinder-shaped case fixed to a vehicle body side;
a rod slidably held inside the case, and protruding from an inside of the case to push out the fuel lid;
an urging device positioned between the case and the rod for urging the rod toward a direction protruding from the inside of the case; and
a lock device positioned between the case and the rod for locking the rod in a backward-movement position of the case against an urging force of the urging device,
wherein the lock device comprises:
a cam portion positioned in a middle along an axis direction of the rod, protruding outwardly in a radial direction, and also including a stationary-side cam formed in a back surface in a protruding direction of the rod;
a rotor supported in a lower-side rod portion positioned at a back in the protruding direction as a border of the cam portion so as to be capable of rotating and sliding in the axis direction, and including a movable-side cam, engaging the stationary-side cam of the cam portion, and also disengaging by sliding of the rod, for providing a rotational force in one direction;
slide grooves positioned in one of an outer circumferential surface of the cam portion or an inner circumferential surface of the case, and extending in a sliding direction of the rod;
slide projections positioned in the other of the outer circumferential surface of the cam portion or the inner circumferential surface of the case, and due to the sliding of the rod, relatively sliding inside the slide grooves so as to block a rotation of the rod relative to the case;
engagement projections protruding from one of the outer circumferential surface of the rotor or the inner circumferential surface of the case; and
lock grooves positioned in the other of the outer circumferential surface of the rotor or the inner circumferential surface of the case, and including lock portions in which the engagement projections are fitted in, wherein due to disengagement of the movable-side cam from the stationary-side cam, the rotor rotates so as to allow the engagement projections that have been fitted in the lock portions to be disengaged from the lock portions, and
wherein the urging device comprises:
a spring inserted to pass through the lower-side rod portion, and elastically shrunk inside the case for urging the rotor toward the cam portion; and
a sleeve inserted to pass through the lower-side rod portion, and positioned between the rotor and the spring for restricting a movement of the rod in the sliding direction in a lock position of the lock device.
2. A push-up device according to
a projecting portion positioned at an upper end portion of the sleeve main body abutting against the rotor, and projecting outwardly in the radial direction; and
a contracted-diameter portion positioned at a lower end portion of the sleeve main body on a side opposite to the upper end portion, and protruding inwardly in the radial direction,
wherein the lower-side rod portion comprises a constricted portion which is slenderized so that the contracted-diameter portion is fitted in, and
wherein the constricted portion includes a clearance in the axis direction of the constricted portion, which allows the contracted-diameter portion to slide according to a rising and descending amount of the rotor which rises and descends between a first height position in which the movable-side cam of the rotor is engaged with the stationary-side cam of the cam portion, and a second height position disengaging from the stationary-side cam.
3. A push-up device according to
4. A push-up device according to
|
The present application is National Phase of International Application No. PCT/JP2010/060783 filed Jun. 24, 2010, and claims priority from Japanese Application No. 2009-151050, filed Jun. 25, 2009.
The present invention relates to a push-up device for pushing out a fuel lid openably and closably attached to a vehicle body in an opening direction. In a lock position in which a rod is shortened, the push-up device can prevent the rod from freely sliding relative to a case.
Conventionally, there is well known a push-up device which forms a cam in the rod, and takes a lock-and-unlock posture every time the rod rotates one quarter relative to the case (for example, see paragraph [0019] and FIG. 2 of Patent Document 1).
However, in the aforementioned conventional push-up device, during a lock-and-unlock movement, there is a point at which the cam becomes free, so that there has been a problem that a malfunction may occur due to friction, torsion of a spring, and the like.
Therefore, the present invention is made in view of the problem that the aforementioned conventional technology has, and an object of the present invention is to eliminate the point at which the cam becomes free so as to be capable of preventing the malfunction of the push-up device.
The present invention is made in order to achieve the aforementioned object, and has the following characteristics.
First, the present invention is a push-up device for pushing out a fuel lid openably and closably attached to a vehicle body (for example, an inner panel) in an opening direction.
Secondly, the push-up device comprises the following structure.
(1) Case
A case is fixed to a vehicle body (for example, the inner panel) side, and formed in a cylinder shape.
(2) Rod
A rod is slidably held inside the case, and protrudes from an inside of the case for pushing out the fuel lid.
(3) Urging Device (for Example, a Spring)
An urging device (for example, a spring) is positioned between the case and the rod for urging the rod toward a direction protruding from the inside of the case.
(4) Lock Device (for Example, a Lock Groove and an Engagement Projection, and the Like)
A lock device (for example, a lock groove and an engagement projection, and the like) is positioned between the case and the rod for locking the rod in a backward-movement position of the case against an urging force of the urging device (for example, the spring).
Thirdly, the lock device comprises the following structure.
(5) Cam Portion
A cam portion is positioned at some point along an axis direction of the rod, protrudes outwardly in a radial direction, and also includes a stationary-side cam formed in aback surface in a protruding direction of the rod.
(6) Rotor
A rotor is supported in a lower-side rod portion positioned at the back in a protruding direction as a border of the cam portion so as to be capable of rotating and sliding in the axis direction. The rotor includes a movable-side cam engaging the stationary-side cam of the cam portion, and disengaging by sliding of the rod for providing a rotational force in one direction.
(7) Slide Groove
A slide groove is positioned in one of either an outer circumferential surface of the cam portion or an inner circumferential surface of the case, and extends in a sliding direction of the rod.
(8) Slide Projection
A slide projection is positioned in the other of the outer circumferential surface of the cam portion or the inner circumferential surface of the case, and due to the sliding of the rod, relatively slides inside the slide groove so as to block a rotation of the rod relative to the case.
(9) Engagement Projection
An engagement projection protrudes from one of either the outer circumferential surface of the rotor or the inner circumferential surface of the case.
(10) Lock Groove
A lock groove is positioned in the other of the outer circumferential surface of the rotor or the inner circumferential surface of the case, and includes a lock portion in which the engagement projection is fitted in. The movable-side cam is disengaged from the stationary-side cam, so that the rotor rotates. As a result, the engagement projection that has been fitted in the lock portion can be disengaged from the lock portion.
Fourthly, the urging device comprises the following structure.
(11) Spring
The spring is inserted to pass through the lower-side rod portion, and elastically shrunk inside the case for urging the rotor toward the cam portion.
(12) Sleeve
A sleeve is inserted to pass through the lower-side rod portion, and positioned between the rotor and the spring for restricting a movement of the rod in the sliding direction in a lock position of the lock device (for example, the lock groove and the engagement projection, and the like).
The present invention may also comprise the following characteristics.
First, the sleeve comprises the following structure.
(1) Sleeve Main Body
A sleeve main body is inserted to pass through the lower-side rod portion, and formed in the cylinder shape.
(2) Projecting Portion
A projecting portion is positioned in an upper end portion of the sleeve main body abutting against the rotor, and projects outwardly in the radial direction.
(3) Contracted-Diameter Portion
A contracted-diameter portion is positioned in a lower end portion of the sleeve main body on a side opposite to the upper end portion, and protrudes inwardly in the radial direction.
Secondly, in the lower-side rod portion, there is provided a constricted portion which is made slim so that the contracted-diameter portion is fitted in.
Thirdly, in the constricted portion, in the axis direction of the constricted portion, there is provided a clearance which allows the contracted-diameter portion to slide according to a rising and descending amount of the rotor which rises and descends between a first height position in which the movable-side cam of the rotor is engaged with the stationary-side cam of the cam portion, and a second height position disengaging from the stationary-side cam.
Consequently, the clearance required for a cam operation can be ensured.
The present invention may further comprise the following characteristics.
Specifically, in the case, there is fixed a boot which can expand and contract so as to cover the upper-side rod portion positioned in front in the protruding direction of the rod as the border of the cam portion. Consequently, in a lock state wherein the rod is shortened, due to a reaction force of the boot, the rod can be prevented from freely sliding relative to the case.
The present invention may also comprise the following characteristics.
First, the case comprises the following structure.
(1) Cap
A cap is attached to an opening end portion positioned in front in the protruding direction of the rod.
Secondly, in the cap, the slide groove and the lock groove are provided.
Consequently, by providing the slide groove and the lock groove in the cap of the case, a structure of the case can be simplified.
Since the present invention has the aforementioned structure, the following effect is obtained.
A point at which the cam becomes free is eliminated so as to be capable of preventing a malfunction of the push-up device.
Specifically, the sleeve, which has been inserted to pass through the rod, is positioned between the rotor including a movable-side cam portion engaging the stationary-side cam of the cam portion of the rod, and the spring urging the rotor toward the cam portion of the rod. As a result, in the lock position, the movement of the rod in the sliding direction can be restricted. Therefore, the rod moves in the sliding direction in the lock position, and the stationary-side cam and the movable-side cam portion are spaced apart so as to be capable of preventing from becoming free.
(Push-Up Device 10)
In
Specifically, as shown in
As shown in
Incidentally, the following (1) to (7) will be described hereinafter.
(1) Case 40
(2) Cap 50
(3) Rod 60
(4) Rotor 70
(5) Sleeve 80
(6) Spring 90
(7) Boot 100
Incidentally, the parts of the push-up device 10 are not limited to the aforementioned (1) to (7).
(Case 40)
As shown in
Specifically, as shown in
In the case 40, a flange portion 41 projecting outwardly in a radial direction is provided in an upper portion of the opening.
On an upper side of the flange portion 41, there is provided an annular attachment concave portion 42 attaching the boot 100 described hereinafter.
Also, on a lower side of the flange portion 41, there is provided a plurality, for example, three pieces of elastic claws 43 elastically protruding from an outer circumference of the case 40 in a radial fashion. The elastic claws 43 are positioned away from a lower surface of the flange portion 41 while maintaining an interval of a plate thickness of the inner panel 30.
As shown in
(Cap 50)
As shown in
Specifically, as shown in
As shown in
As shown in
As shown in
As shown in
On the other hand, as shown in
Specifically, as shown in
Also, as shown in
Specifically, as shown in
Specifically, as shown in
Inclination-lower end portions of the first inclined surface portions 56a, i.e., the back in the rotational direction of the rotor 70 face one of the slide grooves 55. Also, an inclination angle of the first inclined surface portions 56a and the second inclined surface portions 56d is conformed.
(Rod 60)
As shown in
Specifically, as shown in
As shown in
As shown in
On an upper end portion of the upper-side rod portion 62, there is provided an annular groove 66 which is annular and attaches the after-mentioned boot 100.
As shown in
Specifically, as shown in
An amount of the clearance C is set according to a rising and descending amount of the rotor 70 which rises and descends between a first height position in which the movable-side cam 72 of the after-mentioned rotor 70 is engaged with the stationary-side cam 64 of the cam portion 61, and a second height position disengaging from the stationary-side cam 64. In the present embodiment, although the amount of the clearance C is set in, for example, “0.4 mm”, the amount is not limited to the aforementioned numerical value.
(Rotor 70)
As shown in
Specifically, as shown in
The movable-side cam 72 forms a shape complementary to the stationary-side cam 64, is formed in the continuous fashion along the circumferential direction of the upper surface of the rotor 70, and formed in the pure angular wave-tooth shape.
As shown in
As shown in
Also, as shown in
On the other hand, the engagement projections 73 constitute a lock device together with the lock grooves 56 of the cap 50. As shown in
(Sleeve 80)
As shown in
Specifically, as shown in
(1) Sleeve Main Body 81
As shown in
(2) Projecting Portion 82
As shown in
(3) Contracted-Diameter Portion 83
As shown in
(4) Slits 84
As shown in
Specifically, the slits 84 are formed as a pair in a diametrical direction of the sleeve main body 81, and formed up to some point toward an upside from an end surface of a lower side of the sleeve main body 81.
Incidentally, although the slits 84 are formed, for example, as a pair, three or more slits 84 may be formed.
(Spring 90)
As shown in
Specifically, as shown in
(Boot 100)
As shown in
Specifically, as shown in
As shown in
On the inner circumferential surface of an opening lower surface of the boot 100, there is provided an annular convex portion 102 annularly protruding inwardly in the radial direction. The annular convex portion 102 is fitted in the annular concave portion 42 of the flange portion 41 of the case 40, and the boot 100 is fixed relative to the case 40.
(Movement of Push-Up Device 10)
Next, a movement of the push-up device 10 comprising the aforementioned structure will be explained.
As shown in
In a state wherein the fuel lid 20 is closed, as shown in
When the fuel lid 20 is pushed in, the rod 60 is pushed into the case 40, and the lock state is released. Due to a compressive restoring force of the spring 90, the rod 60 protrudes from the inside of the case 40 so as to push-open the fuel lid 20.
Consequently, the pushed-open fuel lid 20 can be easily opened by hand.
On the other hand, when the opened fuel lid 20 is closed by hand, the rod 60 is pushed in toward the case 40 so as to be locked in the shortened lock state.
(Movement of Lock Device)
A movement of the lock device will be explained.
As shown in
When the rod 60 is pushed into the case 40, although it is not shown in the figures, the rotor 70 descends by being pushed by the cam portion 61 of the rod 60.
Consequently, although it is not shown in the figures, the engagement, projections 73 of the rotor 70 are disengaged from the lock portions 56b of the cap 50.
At this time, an engagement between the stationary-side cam 64 of the cam portion 61 of the rod 60 and the movable-side cam 72 of the rotor 70 is disengaged, and the rotor 70 rotates in a direction of the arrow X in
Next, when a force pushing the rod 60 in is released, the rotor 70 is pushed up due to the compressive restoring force of the spring 90.
At this time, although it is not shown in the figures, the engagement projections 73 of the rotor 70 abut against the second inclined surface portions 56d of the cap 50. Consequently, the engagement projections 73 ascend while sliding and contacting the second inclined surface portions 56d so as to be fitted in the slide grooves 55 from the upper end portions of the inclined surfaces of the second inclined surface portions 56d (see
As shown in
Consequently, due to the compressive restoring force of the spring 90, through the rotor 70, the cam portion 61 of the rod 60 is pushed up, and the rod 60 protrudes from the case 40 so as to extend.
On the other hand, when the extended rod 60 is pushed into the case 40, although it is not shown in the figures, the engagement projections 73 of the rotor 70 descend along the slide grooves 55.
Next, when the engagement projections 73 come out of opening lower ends of the slide grooves 55, the rotor 70 is allowed to rotate.
Consequently, due to a disengagement between the stationary-side cam 64 and the movable-side cam 72, the rotor 70 rotates in the direction of the arrow X in
Next, when the force pushing the rod 60 in is released, the rotor 70 is pushed up due to the compressive restoring force of the spring 90, and at this time, the engagement projections 73 abut against the first inclined surface portions 56a. Consequently, the engagement projections 73 ascend while sliding and contacting the first inclined surface portions 56a so as to be fitted in the lock portions 56b, and return to the lock state again.
All contents of the specification, claims, drawings, and abstract of Japanese Patent Applications No. 2009-151050 filed on Jun. 25, 2009 are cited in their entireties herein and are incorporated as a disclosure of the specification of the present invention.
Kurachi, Katsuhito, Taniguchi, Katsuhiko
Patent | Priority | Assignee | Title |
11214993, | Jan 10 2014 | NIFCO INC | Latch device |
9010836, | Mar 02 2011 | NIFCO INC | Push-out device |
9038499, | Mar 11 2013 | Mitsui Kinzoku Act Corporation | Opening and closing apparatus |
9151367, | Mar 20 2013 | GM Global Technology Operations LLC | Actuator element for a motor vehicle cover |
9856681, | Jun 17 2016 | NIFCO AMERICA CORP. | Push lifter |
Patent | Priority | Assignee | Title |
5836638, | Dec 09 1996 | Illinois Tool Works Inc. | Fuel door assembly |
20090139991, | |||
DE19650594, | |||
EP2017112, | |||
JP2007290573, | |||
JPS57180071, | |||
JPS6068162, | |||
WO2008031814, |
Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Jun 24 2010 | Nifco Inc. | (assignment on the face of the patent) | / | |||
Feb 06 2012 | TANIGUCHI, KATSUHIKO | NIFCO INC | RECORD TO CORRECT THE SECOND INVENTOR S NAME ON AN ASSIGNMENT DOCUMENT PREVIOUSLY RECORDED AT REEL FRAME 027845 0779 | 028466 | /0358 | |
Feb 06 2012 | KURACHI, MASATO | NIFCO INC | RECORD TO CORRECT THE SECOND INVENTOR S NAME ON AN ASSIGNMENT DOCUMENT PREVIOUSLY RECORDED AT REEL FRAME 027845 0779 | 028466 | /0358 | |
Feb 06 2012 | TANIGUCHI, KATSUHIKO | NIFCO INC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 027845 | /0779 | |
Feb 06 2012 | KURACHI, KATSUHITO | NIFCO INC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 027845 | /0779 |
Date | Maintenance Fee Events |
Feb 20 2014 | ASPN: Payor Number Assigned. |
Jan 05 2017 | M1551: Payment of Maintenance Fee, 4th Year, Large Entity. |
Sep 28 2020 | M1552: Payment of Maintenance Fee, 8th Year, Large Entity. |
Date | Maintenance Schedule |
Jul 16 2016 | 4 years fee payment window open |
Jan 16 2017 | 6 months grace period start (w surcharge) |
Jul 16 2017 | patent expiry (for year 4) |
Jul 16 2019 | 2 years to revive unintentionally abandoned end. (for year 4) |
Jul 16 2020 | 8 years fee payment window open |
Jan 16 2021 | 6 months grace period start (w surcharge) |
Jul 16 2021 | patent expiry (for year 8) |
Jul 16 2023 | 2 years to revive unintentionally abandoned end. (for year 8) |
Jul 16 2024 | 12 years fee payment window open |
Jan 16 2025 | 6 months grace period start (w surcharge) |
Jul 16 2025 | patent expiry (for year 12) |
Jul 16 2027 | 2 years to revive unintentionally abandoned end. (for year 12) |